| Literature DB >> 30357550 |
Xianchao Liu1, Jun Wang2, Jun Gou1, Chunhui Ji1, Guanhao Cui1.
Abstract
In order to enhance the refractive index sensing performance of simple particle arrays, a structure, consisting of Au/SiO2 triangle arrays layers and reflection Au substrate, with increasing size and lengthening tips of triangles, is studied. The triangle arrays are modeled after an experimentally realizable "imprint" of microsphere lithography. Numerical calculation was carried out to study its optical properties and spectral sensitivity. The calculation results show that a large local enhancement of electric field (61 times) and simultaneously high absorption is due to combination of the resonance absorption of Au triangle disks, plasmonic couplings between the Au triangle disks and the Au film, and the high-density packing of triangle disks. The absorption peaks were not detuned when the gap between neighboring tips of the triangles varied from 10 to 50 nm. When the thickness of SiO2 layer increased from 10 to 50 nm, the absorption peak shifted to longer wavelengths and the amplitude rises quickly signaling the dominance of the gap mode resonance between the two Au layers. As the thickness of the top Au layer varies from 10 to 50 nm, the absorption peak is also red shifted and the peak amplitude increases. The full width at half maximum of the peaks for high absorption (> 90%) is about 5 nm. When fixing the gap, the thicknesses of Au/SiO2 triangle layer, and increasing the surrounding refractive index from 1.33 to 1.36, the absorption peaks shifted quickly, with a refractive index sensitivity and figure of merit as high as 660 nm per refractive index unit and 132, respectively. Such arrays can be easily fabricated by using microsphere array as projection masks and find application in refractive index monitoring of liquid and identification of gas and liquid phases.Entities:
Keywords: Absorber; Figure of merit; Localized surface plasmon; Sensing; Triangle arrays
Year: 2018 PMID: 30357550 PMCID: PMC6200832 DOI: 10.1186/s11671-018-2755-3
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic of MIM structure sensor. a Perspective view. b Cross-sectional view. c, d Top view
Fig. 2Absorption spectrum varies with the gap sizes between adjacent tips of triangles increasing of MIM structure array (a) and MII structure array (b). The inset at the top-right corner of a is absorption spectrum of isolated MIM structure. c–e Electric field |E| distribution of xoz plane (y = 0 nm) of MIM structure array models with gap sizes of 20 nm, 30 nm, 50 nm, respectively. f |E| distribution of xoz plane (y = 0 nm) of MII structure array model with gap size 30 nm. g |H| distribution of xoz plane (y = 0 nm) of MIM structure array model with gap size of 30 nm. h |E| distribution of xoy plane (z = − 30 nm) of MIM structure array model with gap size of 30 nm
Fig. 3a Absorption spectrum varies with thickness of SiO2 layer increasing. b Absorption spectrum varies with thickness of top triangle Au array layer increasing
Fig. 4Absorption peak varies with environment refractive index (from 1.33 to 1.36) increasing